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1.
采用半经典动力学方法模拟了激光诱导下π堆积的腺嘌呤体系最低激发态的失活过程. 模拟激光脉冲仅作用于一个腺嘌呤分子. 发现随着激发态腺嘌呤分子(A)与基态腺嘌呤分子(A′)之间距离的缩短, 它们的相互作用显著增强. 分子间的相互作用导致了一条新的失活通道, 即C2原子与C2′原子靠拢成键, 形成“成键的激基复合体”的中间体. 中间体的寿命约为390 fs. C2原子的畸变和H2′原子的环面外振动导致中间体失活. 失活后C2-C2′断裂, 释放的键能转化为分子动能, 腺嘌呤分子恢复基态的平面结构.  相似文献   

2.
合成了 3 个有机锡 9-芴酮-4-甲酸酯:三苯基锡 9-芴酮-4-甲酸酯[(C6H5)3Sn(C14H7O3)] (1)、三环己基锡 9-芴酮-4-甲酸酯[(C6H11)3Sn(C14H7O3)] (2)和三(2-甲基-2-苯基丙基)锡 9-芴酮-4-甲酸酯[(C6H5C(CH3)2CH2)3Sn(C14H7O3)] (3)。通过元素分析、红外光谱、核磁共振谱(1H、13C和 119Sn)、热重分析进行了表征;用单晶X射线衍射方法测定了化合物的晶体结构,并对其进行了量子化学计算和体外抗癌活性研究。结果显示:化合物1为一维链状结构,中心锡原子为五配位的畸变三角双锥构型;化合物23均为单核分子,锡原子均为四配位的畸变四面体构型。化合物对人宫颈癌细(HeLa)、人肝癌细胞(HUH-7)、人非小细胞肺癌细胞(A549)、人肺腺癌细胞(H1975)和人乳腺癌细胞(MCF-7)都有较好的抑制活性。  相似文献   

3.
三氯化钛分别与苹果酸铵、酒石酸铵和柠檬酸铵反应,制得三种新的固态配合物:苹果酸羟基钛(Ⅲ)、酒石酸羟基钛(Ⅲ)和柠檬酸钛(Ⅲ)(化学式分别为Ti(OH)(C4H4O5)·1.5H2O、Ti(OH)(C4H4O6)·1.5H2O和Ti(C6H5O7)·1.5H  相似文献   

4.
本文选取苯基乙酰甲基亚砜(C6H5SOCH2COCH3)作为配体与碱土金属(钙、锶)的高氯酸盐反应得到配合物的单晶,对它们进行了元素分析及红外光谱表征,它们的化学式为[ML6](ClO4)2(M=Ca、Sr;L=C6H5SOCH2COCH3)。并用X-ray单晶衍射法测定了钙、锶配合物的晶体结构。  相似文献   

5.
首次合成了未见文献报道的两种新的手性簇合物,(μ3-S)FeCoW(CO)8C5H4C(O)R (R=C6H5、C6H5C(O)OCH3),对其合成、谱学性质及晶体结构进行了研究。  相似文献   

6.
半夹芯16e化合物CpCoS2C2B10H10(Cp:cyclopentadienyl) (1)与HC≡CCO2Me在2-甲基二硫代丙酸存在下反应生成化合物{(C5H4CoS2C2B9H9)(CH=CHCO2Me)(Me2C=CS2H)} (2)和(Me2C=CS2H)3Co (3)。在化合物2中, 原料化合物1中的一个S-Co键断裂, 该S原子与一分子HC≡CCO2Me末端炔基碳原子连接。Co原子与2-甲基二硫代丙酸的S原子连接成键, 2-甲基二硫代丙酸分子中的SH基团与Co原子通过配位键相连;同时, Cp环的一个碳原子与碳硼烷笼体的B(3)/B(6)位相连, 该B(3)/B(6)位的氢原子迁移到炔烃HC≡CCO2Me的内部炔基碳原子上形成反式烯键。3个2-甲基二硫代丙酸分子中的3个S原子分别与1中的Co原子通过共价键连接, 3个SH基团与Co原子通过配位键相连, 从而形成化合物3。化合物2和3分别用红外、核磁、元素分析、质谱和单晶X-射线衍射分析等方法进行了表征。  相似文献   

7.
半夹芯16e化合物CpCoS2C2B10H10(Cp:cyclopentadienyl) (1)与HC≡CCO2Me在2-甲基二硫代丙酸存在下反应生成化合物{(C5H4CoS2C2B9H9)(CH=CHCO2Me)(Me2c=CS2H)} (2)和(Me2c=CS2H)3Co (3)。在化合物2中, 原料化合物1中的一个S-Co键断裂, 该S原子与一分子HC≡CCO2Me末端炔基碳原子连接。Co原子与2-甲基二硫代丙酸的S原子连接成键, 2-甲基二硫代丙酸分子中的SH基团与Co原子通过配位键相连;同时, Cp环的一个碳原子与碳硼烷笼体的B(3)/B(6)位相连, 该B(3)/B(6)位的氢原子迁移到炔烃HC≡CCO2Me的内部炔基碳原子上形成反式烯键。3个2-甲基二硫代丙酸分子中的3个S原子分别与1中的Co原子通过共价键连接, 3个SH基团与Co原子通过配位键相连, 从而形成化合物3。化合物23分别用红外、核磁、元素分析、质谱和单晶X-射线衍射分析等方法进行了表征。  相似文献   

8.
5-甲基胞嘧啶-BH3复合物构型及异构化机理的理论研究   总被引:1,自引:0,他引:1  
靳玲侠  王文亮  吴东兵  王渭娜 《化学学报》2007,65(11):1012-1018
用B3LYP/6-311+G(d)及MP2/6-311+G(d)计算方法, 对5-甲基胞嘧啶与BH3所形成复合物及异构化反应进行了研究, 获得了6种复合物及4个异构化过渡态. 在考虑基组重叠误差校正基础上, 得到了结合能及变形能等信息, 并用自然键轨道分析法讨论了其相互作用情况. 结果表明, BH3与5-甲基胞嘧啶中N(3), O及N(4)相连形成稳定复合物a, b1, b2c, 其结合能分别为104.58, 92.25, 63.49和43.41 kJ•mol-1; 复合物a, b1, b2, cd既可通过BH3与5-甲基胞嘧啶不同部位结合直接生成, 也可通过BH3整体迁移实现相互转化; 甲基化对复合物稳定性及相互异构化能垒无明显影响.  相似文献   

9.
许小燕  李淑瑾  吴德印  顾仁敖 《化学学报》2007,65(12):1095-1100
用Gaussian 98程序在B3LYP/6-311+G**(C, H, S)水平上计算得到苯硫酚(TP)的一套校正因子, 对苯硫酚各频率进行了势能分布(PEDs)分析, 并对各振动模式进行了详细的指认. 同时, 在B3LYP/6-311+G**(C, H, S)/LANL2DZ(Au)水平上优化得到苯硫酚的各种形态与金结合, 即C6H5SH-Au, C6H5SAu, C6H5S-Au的平衡构型, 且在此基础上得到了C6H5SH-Au, C6H5SAu, C6H5S-Au三种形态的计算拉曼谱图. 其中苯硫酚金盐(C6H5SAu)的拉曼谱图与实验得到的苯硫酚在金溶胶中的谱图是一致的, 由此很好地证明了TP与金形成苯硫酚金盐.  相似文献   

10.
三齿单核三(3,5-二甲基-1-吡唑)硼氢钼配合物Tp*Mo(O)Cl2 (1)(Tp*=三(3,5-二甲基-1-吡唑)硼氢HB(C3H(Me2)N2)3)与含硫族元素碳硼烷的锂盐[(THF)2LiE2C2B10H10(THF)]<  相似文献   

11.
The dissociative spectrum of the [C6H5S]+ ion derived by charge inversion from [C6H5S]?, shows a variety of fragmentations including the competitive losses of H?, C3H4 and the formation of [CHS]+. The spectrum of a deuteriated derivative shows that these three processes are preceded or accompanied by H/D scrambling. The corresponding [C6H5O]+ species also undergoes hydrogen scrambling prior to fragmentation. In marked contrast, the ion [p-MeC6H4S]+ does not undergo hydrogen randomization between the methyl and aryl groups, and positional integrity is retained during fragmentation. These results are compared with the properties of the same ions produced by conventional ionization.  相似文献   

12.
Reactions of Tetrakis[bis(trimethylsilyl)methyl]dialane(4) with Methylisothiocyanate and Phenylisocyanate – Insertion into the Al? Al Bond and Fragmentation Tetrakis[bis(trimethylsilyl)methyl]dialane(4) 1 reacts with methyl isothiocyanate under cleavage of the C?S double bond and insertion of the remaining isonitrile fragment into the Al? Al bond. As shown by crystal structure determination a three-membered AlCN heterocycle ( 4 ) is formed by the interaction of the nitrogen lone pair with one unsaturated Al atom leading to an acute angle at the aluminium center N? Al? C of 36.6°. In contrast the reaction with the hard base phenyl isocyanate yields a mixture of many unknown compounds, from which only one ( 5 ) could be isolated in a very poor yield. The crystal structure of 5 reveals only one dialkyl aluminium fragment and a chelating ligand formed by the trimerization of the isocyanate under loss of one CO group and addition of a hydrogen atom. 5 was also synthesized by the specific reaction of the chloro dialkyl aluminium compound (R = CH(SiMe3)2) with Li[H5C6? N?C(O)? N(C6H5)? C(O)? N(H)? C6H5].  相似文献   

13.
The reaction of 5‐chloro‐3‐methyl‐1‐phenyl‐1H‐pyrazole‐4‐carbaldehyde and N‐benzylmethylamine under microwave irradiation gives 5‐[benzyl(methyl)amino]‐3‐methyl‐1‐phenyl‐1H‐pyrazole‐4‐carbaldehyde, C19H19N3O, (I). Subsequent reactions under basic conditions, between (I) and a range of acetophenones, yield the corresponding chalcones. These undergo cyclocondensation reactions with hydrazine to produce reduced bipyrazoles which can be N‐formylated with formic acid or N‐acetylated with acetic anhydride. The structures of (I) and of representative examples from this reaction sequence are reported, namely the chalcone (E )‐3‐{5‐[benzyl(methyl)amino]‐3‐methyl‐1‐phenyl‐1H‐pyrazol‐4‐yl}‐1‐(4‐bromophenyl)prop‐2‐en‐1‐one, C27H24BrN3O, (II), the N‐formyl derivative (3RS )‐5′‐[benzyl(methyl)amino]‐3′‐methyl‐1′,5‐diphenyl‐3,4‐dihydro‐1′H ,2H‐[3,4′‐bipyrazole]‐2‐carbaldehyde, C28H27N5O, (III), and the N‐acetyl derivative (3RS )‐2‐acetyl‐5′‐[benzyl(methyl)amino]‐5‐(4‐methoxyphenyl)‐3′‐methyl‐1′‐phenyl‐3,4‐dihydro‐1′H ,2H‐[3,4′‐bipyrazole], which crystallizes as the ethanol 0.945‐solvate, C30H31N5O2·0.945C2H6O, (IV). There is significant delocalization of charge from the benzyl(methyl)amino substituent onto the carbonyl group in (I), but not in (II). In each of (III) and (IV), the reduced pyrazole ring is modestly puckered into an envelope conformation. The molecules of (I) are linked by a combination of C—H…N and C—H…π(arene) hydrogen bonds to form a simple chain of rings; those of (III) are linked by a combination of C—H…O and C—H…N hydrogen bonds to form sheets of R 22(8) and R 66(42) rings, and those of (IV) are linked by a combination of O—H…N and C—H…O hydrogen bonds to form a ribbon of edge‐fused R 24(16) and R 44(24) rings.  相似文献   

14.
The title compound, C6H13NO5, adopts a zwitterionic form where the carboxylic acid H atom is transferred to the amino group. The methyl–glycine backbone is planar. The tris(hydroxy­methyl)­methyl group is rotated as a rigid group around the amino–methyl bond by 22 (1)° and the carboxylic acid plane is rotated by 19.76 (12)° from the plane of the main skeleton. Apart from their H atoms, the three hydroxy­methyl groups adopt a propeller‐like conformation around the amino–methyl bond, close to C3 symmetry.  相似文献   

15.
C4H4+ reacts with pyridine (C5H5N) via the channels of proton transfer, charge transfer and condensation with H-elimination. The condensation reaction is of general interest in terms of basic chemistry and is the focus of the present study. By means of theoretical calculations and Fourier transform mass spectrometer experiments using deuterated pyridine and substituted pyridines, the structure of the product ion and the reaction pathways are investigated. From the experimental results we find that the H atom that is eliminated can originate from either pyridine or C4H4+. The experiments show that elimination of an H atom from C4H4+ is preferred and that there is an observable kinetic isotope effect. By replacing H atoms with methyl groups in ortho positions of pyridine, the experimental results also suggest possible steric blocking to the condensation. Based on the experimental observations and results of theoretical calculations of several possible structures of intermediates, transition states, and final product ions, a possible reaction scheme for the condensation-H-elimination is discussed.  相似文献   

16.
The results of seven cocrystallization experiments of the antithyroid drug 6‐methyl‐2‐thiouracil (MTU), C5H6N2OS, with 2,4‐diaminopyrimidine, 2,4,6‐triaminopyrimidine and 6‐amino‐3H‐isocytosine (viz. 2,6‐diamino‐3H‐pyrimidin‐4‐one) are reported. MTU features an ADA (A = acceptor and D = donor) hydrogen‐bonding site, while the three coformers show complementary DAD hydrogen‐bonding sites and therefore should be capable of forming an ADA/DAD N—H...O/N—H...N/N—H...S synthon with MTU. The experiments yielded one cocrystal and six cocrystal solvates, namely 6‐methyl‐2‐thiouracil–2,4‐diaminopyrimidine–1‐methylpyrrolidin‐2‐one (1/1/2), C5H6N2OS·C4H6N4·2C5H9NO, (I), 6‐methyl‐2‐thiouracil–2,4‐diaminopyrimidine (1/1), C5H6N2OS·C4H6N4, (II), 6‐methyl‐2‐thiouracil–2,4‐diaminopyrimidine–N,N‐dimethylacetamide (2/1/2), 2C5H6N2OS·C4H6N4·2C4H9NO, (III), 6‐methyl‐2‐thiouracil–2,4‐diaminopyrimidine–N,N‐dimethylformamide (2/1/2), C5H6N2OS·0.5C4H6N4·C3H7NO, (IV), 2,4,6‐triaminopyrimidinium 6‐methyl‐2‐thiouracilate–6‐methyl‐2‐thiouracil–N,N‐dimethylformamide (1/1/2), C4H8N5+·C5H5N2OS·C5H6N2OS·2C3H7NO, (V), 6‐methyl‐2‐thiouracil–6‐amino‐3H‐isocytosine–N,N‐dimethylformamide (1/1/1), C5H6N2OS·C4H6N4O·C3H7NO, (VI), and 6‐methyl‐2‐thiouracil–6‐amino‐3H‐isocytosine–dimethyl sulfoxide (1/1/1), C5H6N2OS·C4H6N4O·C2H6OS, (VII). Whereas in cocrystal (I) an R22(8) interaction similar to the Watson–Crick adenine/uracil base pair is formed and a two‐dimensional hydrogen‐bonding network is observed, the cocrystals (II)–(VII) contain the triply hydrogen‐bonded ADA/DAD N—H...O/N—H...N/N—H...S synthon and show a one‐dimensional hydrogen‐bonding network. Although 2,4‐diaminopyrimidine possesses only one DAD hydrogen‐bonding site, it is, due to orientational disorder, triply connected to two MTU molecules in (III) and (IV).  相似文献   

17.
Doubly and triply hydrogen‐bonded supramolecular synthons are of particular interest for the rational design of crystal and cocrystal structures in crystal engineering since they show a high robustness due to their high stability and good reliability. The compound 5‐methyl‐2‐thiouracil (2‐thiothymine) contains an ADA hydrogen‐bonding site (A = acceptor and D = donor) if the S atom is considered as an acceptor. We report herein the results of cocrystallization experiments with the coformers 2,4‐diaminopyrimidine, 2,4‐diamino‐6‐phenyl‐1,3,5‐triazine, 6‐amino‐3H‐isocytosine and melamine, which contain complementary DAD hydrogen‐bonding sites and, therefore, should be capable of forming a mixed ADADAD N—H…S/N—H…N/N—H…O synthon (denoted synthon 3sN·S;N·N;N·O), consisting of three different hydrogen bonds with 5‐methyl‐2‐thiouracil. The experiments yielded one cocrystal and five solvated cocrystals, namely 5‐methyl‐2‐thiouracil–2,4‐diaminopyrimidine (1/2), C5H6N2OS·2C4H6N4, (I), 5‐methyl‐2‐thiouracil–2,4‐diaminopyrimidine–N,N‐dimethylformamide (2/2/1), 2C5H6N2OS·2C4H6N4·C3H7NO, (II), 5‐methyl‐2‐thiouracil–2,4‐diamino‐6‐phenyl‐1,3,5‐triazine–N,N‐dimethylformamide (2/2/1), 2C5H6N2OS·2C9H9N5·C3H7NO, (III), 5‐methyl‐2‐thiouracil–6‐amino‐3H‐isocytosine–N,N‐dimethylformamide (2/2/1), (IV), 2C5H6N2OS·2C4H6N4O·C3H7NO, (IV), 5‐methyl‐2‐thiouracil–6‐amino‐3H‐isocytosine–N,N‐dimethylacetamide (2/2/1), 2C5H6N2OS·2C4H6N4O·C4H9NO, (V), and 5‐methyl‐2‐thiouracil–melamine (3/2), 3C5H6N2OS·2C3H6N6, (VI). Synthon 3sN·S;N·N;N·O was formed in three structures in which two‐dimensional hydrogen‐bonded networks are observed, while doubly hydrogen‐bonded interactions were formed instead in the remaining three cocrystals whereby three‐dimensional networks are preferred. As desired, the S atoms are involved in hydrogen‐bonding interactions in all six structures, thus illustrating the ability of sulfur to act as a hydrogen‐bond acceptor and, therefore, its value for application in crystal engineering.  相似文献   

18.
In the title compounds, 2‐methoxyethyl 6‐amino‐5‐cyano‐2‐methyl‐4‐(1‐naphthyl)‐4H‐pyran‐3‐carboxylate, C21H20N2O4, (II), isopropyl 6‐amino‐5‐cyano‐2‐methyl‐4‐(1‐naphthyl)‐4H‐pyran‐3‐carboxylate, C21H20N2O3, (III), and ethyl 6‐amino‐5‐cyano‐2‐methyl‐4‐(1‐naphthyl)‐4H‐pyran‐3‐carboxylate, C20H18N2O3, (IV), the heterocyclic pyran ring adopts a flattened boat conformation. In (II) and (III), the carbonyl group and a double bond of the heterocyclic ring are mutually anti, but in (IV) they are mutually syn. The ester O atoms in (II) and (III) and the carbonyl O atom in (IV) participate in intramolecular C—H...O contacts to form six‐membered rings. The dihedral angles between the naphthalene substituent and the closest four atoms of the heterocyclic ring are 73.3 (1), 71.0 (1) and 74.3 (1)° for (II)–(IV), respectively. In all three structures, only one H atom of the NH2 group takes part in N—H...O [in (II) and (III)] or N—H...N [in (IV)] intermolecular hydrogen bonds, and chains [in (II) and (III)] or dimers [in (IV)] are formed. In (II), weak intermolecular C—H...O and C—H...N hydrogen bonds, and in (III) intermolecular C—H...O hydrogen bonds link the chains into ladders along the a axis.  相似文献   

19.
Single and double hydrogen atom transfers in reactions (1) and (2) in the mass spectra of ethyl benzoate, isopropyl benzoate, and isobutyl benzoate have been investigated with reference to the ortho effect: (1) [C6H5CO2R]+? → [C6H5CO2H]+? (m/z 122) + (R-H); (2) [C6H5CO2R]+? → [C6H5CO2H2]+ (m/z 123) + · (R-2H). It is demonstrated that the intermediate ion [C6H5CO2H2]+ has the protonated benzoic acid structure with the hydrogen atom on the carbonyl group.  相似文献   

20.
The crystal structures of two salts, products of the reactions between [(5‐methyl‐2‐pyridyl)aminomethylene]bis(phosphonic acid) and 4‐aminopyridine or ammonia, namely bis(4‐aminopyridinium) hydrogen [(5‐methyl‐2‐pyridinio)aminomethylene]diphosphonate 2.4‐hydrate, 2C5H7N2+·C7H10N2O6P22−·2.4H2O, (I), and triammonium hydrogen [(5‐methyl‐2‐pyridyl)aminomethylene]diphosphonate monohydrate, 3NH4+·C7H9N2O6P23−·H2O, (II), have been determined. In (I), the Z configuration of the ring N—C and amino N—H bonds of the bisphosphonate dianion with respect to the Cring—Namino bond is consistent with that of the parent zwitterion. Removing the H atom from the pyridyl N atom results in the opposite E configuration of the bisphosphonate trianion in (II). Compound (I) exhibits a three‐dimensional hydrogen‐bonded network, in which 4‐aminopyridinium cations and water molecules are joined to ribbons composed of anionic dimers linked by O—H...O and N—H...O hydrogen bonds. The supramolecular motif resulting from a combination of these three interactions is a common phenomenon in crystals of all of the Z‐isomeric zwitterions of 4‐ and 5‐substituted (2‐pyridylaminomethylene)bis(phosphonic acid)s studied to date. In (II), ammonium cations and water molecules are linked to chains of trianions, resulting in the formation of double layers.  相似文献   

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